METHOD AND DEVICE FOR BENDING AND TEMPERING A GLASS SHEET
20170267567 · 2017-09-21
Assignee
Inventors
Cpc classification
C03B23/033
CHEMISTRY; METALLURGY
C03B27/0447
CHEMISTRY; METALLURGY
International classification
Abstract
The invention relates to a method for bending and tempering a glass sheet, the method comprising: heating a flat glass sheet in a furnace for the purpose of bending and tempering; feeding a flat glass sheet by a transfer conveyor from the furnace onto a bending conveyor, when the bending conveyor is straightened; bending the bending conveyor and the glass sheet to the desired curvature; cooling the glass sheet by air blasts, when the bending conveyor and the glass sheet are at the desired curvature. The transfer conveyor transfers the glass sheet away from the furnace to the bending conveyor in the longitudinal direction of the rollers of the furnace, which is the transverse direction in relation to the direction of movement of the glass sheet in the furnace during heating. The invention also relates to a device applying the method.
Claims
1. A method for bending and tempering a glass sheet, the method comprising: heating a flat glass sheet in a furnace supported by rollers for the purpose of bending and tempering, initiating the transfer step of the glass sheet by transferring the glass sheet onto the transfer conveyor by activating the transport platform of the transfer conveyor, transferring the flat glass sheet by the transfer conveyor from the furnace onto the bending conveyor, when the bending conveyor is straightened, bending the bending conveyor and the glass sheet to the desired curvature, cooling the glass sheet by air blasts, when the bending conveyor and the glass sheet are at the desired curvature, wherein the transfer conveyor transfers the flat glass sheet away from the furnace to the bending conveyor in the longitudinal direction of the rollers of the furnace, which is the transverse direction in relation to the direction of movement of the glass sheet in the furnace during heating, and that said air blasting from the blast cooling means is initiated in the bending conveyor towards the glass sheet of the desired curvature immediately once the glass sheet has reached the desired curvature.
2. A method according to claim 1, wherein the desired curvature is formed by adjusting the relative position in height of the rollers of the bending conveyor.
3. A method according to claim 1, wherein, during transfer, the glass sheet is on a moving belt.
4. A method according to claim 1, wherein the conveyor sections of the transfer conveyor and thus also said transport platform are raised upwards at the beginning of the glass sheet transfer step before initiating the transfer movement of the glass sheet in the longitudinal direction of the rollers of the furnace away from the furnace.
5. A device for bending and tempering a glass sheet, the device including: a furnace for heating the glass sheets to the bending temperature, the furnace including rollers, a bending conveyor for bending the glass sheets, the bending conveyor including conveyor rollers, means for bending the bending conveyor to a curvature corresponding to the desired curvature of the glass sheet, and means for cooling the glass sheet for tempering, wherein the device includes a transfer conveyor, in which the transfer direction of a flat glass sheet away from the furnace to the bending conveyor is the longitudinal direction of the rollers of the furnace.
6. A device according to claim 5, wherein the relative position in height of the rollers of the bending conveyor is adjustable in order to curve the bending conveyor to a curvature corresponding to a desired degree of bending.
7. A device according to claim 5, wherein at least one belt is arranged to move the glass sheet in the transfer conveyor.
8. A device according to claim 7, wherein the at least one belt is made of steel wire.
9. A device according to claim 5, wherein one conveyor section of the transfer conveyor is disposed at the transfer point between each gap of the rollers of the furnace.
10. A device according to claim 5, wherein the transfer direction of the flat glass sheet away from the furnace to the bending conveyor is the transverse direction in relation to the direction of movement of the glass sheet in the furnace during heating.
Description
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024] A device according to the invention includes a loading conveyor 1, from which the glass sheet G is transferred into the furnace 2, in which the glass sheet is heated to the bending temperature. The furnace 2 is equipped with rollers 8, which move the glass sheet in direction x (=the longitudinal direction of the furnace) and in its opposite direction −x. The glass sheet thus moves back and forth in the longitudinal section L1 of the furnace 2 during heating, until it moves into the longitudinal section L2 of the furnace 2.
[0025] The furnace 2 is equipped with a transfer conveyor 3, which is activated as the glass sheet G arrives in its entirety from the longitudinal section L1 of the furnace 2 at the transfer point L3 inside the longitudinal section L2 of the furnace 2. As the transfer conveyor 3 activates, it moves the glass sheet G in direction z (=the latitudinal direction of the furnace 2) from the furnace 2 onto the bending conveyor 4. The direction z is preferably perpendicularly transverse in relation to the direction x. Once the glass sheet G in its entirety has reached the bending conveyor 4, the bending conveyor 4 bends the glass sheet G to the desired curvature. The blast cooling means 10, with which the bending conveyor 4 is equipped, are activated immediately once the glass sheet G reaches the desired radius of curvature and cool the glass sheet therein to achieve tempering. The efficiency of the tempering cooling in the bending conveyor 4 at the rollers 9 of the bending conveyor is not equal to that at the blast cooling means 10. The bending conveyor 4 moves the glass sheet G back and forth (in direction z) during tempering in order that the difference in tempering cooling efficiency caused by the location of the rollers 9 of the bending conveyor and the blast cooling means 10 would not be visible as localized tension differences in the tempered glass sheet. Once the glass sheet G has cooled enough, cooling blowing ceases and the bending conveyor 4 straightens. The bent and tempered glass sheet G moves away from the bending conveyor 4 onto the unloading conveyor 5.
[0026] In
[0027]
[0028] In
[0029] Once the glass sheet G arrives in its entirety at the bending conveyor 4, the bending conveyor 4 bends the glass sheet G to the desired curvature, as in
[0030]
[0031] In
[0032] At the narrowest point between the rollers 8, there is typically only approximately 25 mm of space. In
[0033] By using a structure like that of
[0034] The part of the transfer conveyor 3, which touches the glass sheet G, can, in addition to the belt 7, also be a chain or roller track. A belt composed of braided steel is a more preferred solution than a chain because the touch of the glass sheet onto the chain is less even and inflexible, which can cause quality faults to the glass sheet. A belt 7 composed of braided steel is a more preferred solution than a roller track because, when a belt is used, the bearings of the transfer device can be disposed outside the furnace. The belt 7 can also be of some other material than braided steel.
[0035]
[0036] In
[0037] The transfer time can thus also be decreased by increasing acceleration and transfer speed. Acceleration of the transfer speed is limited i.e. by friction between the roller and the glass sheet. Slippage between the glass sheet and the roller during transfer is not permitted in order that scratches would not be rubbed onto the surface of the glass sheet. To prevent slippage, as the maximum for acceleration/deceleration has been found approximately 0.3 mŝ-2. Maximum transfer speed is limited i.e. by increasing vibration as the transfer speed of the rollers increases. The permitted extreme value for the transfer speed is typically 1 m/s. The transfer speed generally used is approximately 0.6 m/s.
[0038] The novelty of the invention is that the bending conveyor 4 is on the side of the furnace, i.e. the glass sheet G is transferred away from the furnace 2 in direction z, which is the transverse direction in relation to the direction of movement of the glass sheet x in the furnace 2. In order to enable this lateral movement, the furnace 2 must be equipped with a new kind of transfer conveyor 3.
[0039] In prior known solutions, the glass sheet transfers away from the furnace in direction x. In this case, if the glass sheet is, for example, 6 m long and 2 m wide, the distance from the furnace to the beginning of the bending conveyor is 0.5 m, the initial speed of the glass is 0, the acceleration/deceleration 0.3 mŝ-2 and [0040] maximum transfer speed is limited to 0.6 m/s and the total transfer distance S is 6+0.5 m, transfer to the bending conveyor takes 12.83 seconds. In a method according to the invention, the total transfer distance S is 2+0.5 m and to transfer an equally large glass sheet takes 6.17 seconds. This example corresponds to the transfer according to
[0044] In the exemplary calculations above, the glass sheet stopped on the bending conveyor immediately once it was in its entirety inside the bending area. This is a preferred solution because, in this case, for example, the transfer time in the first example is (3.3 m−2 m)/2/0.6 m/s=1.08 s shorter than in the case, in which a 2 m wide glass would have been transferred up to the middle of a 3.3 m wide bending area.
[0045] The invention thus substantially decreases the transfer time from the furnace to the bending conveyor, which decreases the cooling of the front end of the glass during transfer approximately as follows: according to the cooling curve of
[0046] A device according to patent FI95236 has a glass sheet bending and tempering station including a roller conveyor, the relative position in height of which rollers is adjustable in order to curve the conveyor to a curvature corresponding to a desired degree of bending. The device includes upper and lower tempering boxes having nozzle openings for discharging air blasts towards the glass sheet to be tempered. The tempering boxes are to be moved to follow the curvature of the bender. Onto the upper tempering boxes are attached press rollers, which press the glass sheet against the rollers during bending. A more detailed description of the device is found in the patent in question. Such a device has been found better, i.e. for the quality of the glass sheet than other bending devices. Other bending devices are, for example, devices, in which bending is performed by bending the rollers of the bender, as in U.S. Pat. No. 6,363,753.
[0047] The invention further enables bending of a glass sheet, which is in its width and its length larger than the loading width of the furnace, to a curve in its shorter direction using a technique, in which the desired curvature of the glass sheet is formed by adjusting the relative position in height of the rollers of the bending conveyor, as, for example, in patent FI95236. This bending technique enables better quality for the glass sheet than bending techniques, in which the desired curvature of the glass sheet is formed by bending the rollers of the bending conveyor, as in U.S. Pat. No. 6,363,753.
[0048] The invention is not limited to the embodiment example presented above. The furnace can also be composed of separate furnaces or it can be so long that the glass sheet does not need to move back and forth in order to fill the heating time. The glass sheet can during heating move back and forth also in the section of the length of the furnace, from which transfer to the bender occurs. The bending conveyor and the transfer device can also be different. As the transfer step begins and ends, the rollers of the furnace can also move in the up-down direction, wherein the transfer device could remain stationary. The device can, in addition to the bending and tempering unit on the other side of the furnace, also be equipped with a tempering cooler to be installed downstream from the furnace (for example, in